Transcriptional inhibition by an oxidized abasic site in DNA

Yingli Wang1, Terry L Sheppard, Silvia Tornaletti

  • 1Department of Chemistry, Northwestern University, 2145 Sheridan Road, Evanston, Illinois 60208-3113, USA.

Insights

2-Deoxyribonolactone (dL), a DNA lesion, blocks transcription by RNA polymerases. This suggests transcription-coupled repair may be necessary for its removal from the genome.

Area of Science:

  • Molecular Biology
  • DNA Repair
  • Biochemistry

Background:

  • 2-Deoxyribonolactone (dL) is an oxidized abasic DNA lesion induced by various agents, including radiation and antitumor drugs.
  • While AP endonucleases incise dL, subsequent repair is hindered by protein-DNA cross-links, suggesting alternative repair pathways are needed.
  • Transcription-coupled repair (TCR) removes lesions from transcribed DNA strands, typically initiated by transcription arrest.

Purpose of the Study:

  • To investigate if 2-Deoxyribonolactone (dL) lesions trigger transcription-coupled repair (TCR).
  • To examine the impact of dL on different RNA polymerases (RNAPs) when located in transcribed or non-transcribed DNA strands.

Main Methods:

  • In vitro transcription assays using bacteriophage T3/T7 RNA polymerases (T3RNAP, T7RNAP) and mammalian RNA polymerase II (RNAPII).
  • Construction of DNA plasmids with dL or its precursor positioned downstream of specific promoters.
  • Analysis of transcription arrest and transcript cleavage mediated by elongation factor TFIIS.

Main Results:

  • Both dL and its precursor completely blocked T3RNAP and T7RNAP transcription when in the transcribed strand.
  • Mammalian RNAPII showed over 90% transcription arrest at the dL lesion in the transcribed strand.
  • Arrested RNAPII complexes were stabilized by transcript cleavage via TFIIS, indicating TCR potential.
  • A dL lesion in the non-transcribed strand did not impede polymerase activity.

Conclusions:

  • 2-Deoxyribonolactone (dL) lesions in the transcribed strand effectively halt transcription by multiple RNAPs.
  • The transcription arrest and subsequent TFIIS-mediated cleavage suggest dL is a substrate for transcription-coupled repair (TCR).
  • This implies TCR may play a crucial role in removing dL from the genome, complementing base-excision repair.

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